Answer:
[tex]T_2=562.2 C [/tex]
ΔU =195 KJ
W=0 KJ
Explanation:
Given that
[tex]P_1=0.5 MPa[/tex]
[tex]P_2=1.2 MPa[/tex]
[tex]T_1=75 C [/tex]
Mass of air m=3 kg
heat absorb by air =195 KJ
Cv=0.741 KJ/kgK
If we assume that air is as ideal gas so
[tex]\dfrac{P_1}{T_1}=\dfrac{P_2}{T_2}[/tex]
[tex]\dfrac{0.5}{273+75}=\dfrac{1.2}{T_2}[/tex]
[tex]T_2=562.2 C [/tex]
Given that container is rigid it means that volume of system is constant so W=0
From first law of thermodynamics
Q=ΔU + W
⇒Q= ΔU (W=0)
So ΔU =195 KJ
And work done will be zero because because it is a constant volume process.
